Building curved surface design auxiliary device
By combining clamping components, flexible plates, and lifting plates, the problem of supporting curved structures in architectural design is solved, enabling flexible support and fixation of micro-curved surfaces and improving the practical application effect of the design.
Patent Information
- Application Number
- CN202520294129.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-24
AI Technical Summary
After architects design curved structures on computers, it is difficult to effectively assist in the fabrication of supports and fixation for micro-curved structures, as existing technologies lack effective auxiliary devices.
An auxiliary device for architectural curved surface design is adopted, which includes clamping components, flexible plates, lifting plates, and adjusting components. The adjusting components drive the lifting plates to move, and the clamping components move synchronously to support and fix the curved surface changes of the flexible plates, thereby achieving fixed-point support for different curved surfaces.
It enables flexible support and fixation of micro-curved surface structures, improves the practical application effect of architectural design, and enhances the operability of curved surface design.
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Figure CN223782555U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of architectural surface design technology, specifically relating to an auxiliary device for architectural surface design. Background Technology
[0002] Curved surfaces can break the monotony of traditional straight lines and right angles in architecture, creating smooth, dynamic, and agile architectural forms. This makes buildings more sculptural and artistically expressive, becoming unique visual focal points in the city. For example, the Sydney Opera House, with its iconic shell-shaped curved roof, has become a symbol of Australia and a classic work of world architectural art. Curved surfaces can be flexibly adjusted and designed according to the characteristics of the surrounding natural environment or urban landscape, better echoing and integrating with the surrounding environment, making the building seem to grow naturally into the environment, enhancing the overall harmony between the building and the environment. For example, some coastal buildings use curved surface designs to echo the shape of the waves, creating a harmonious seaside landscape.
[0003] When architects are creating inspiration, they typically design curved surfaces using 3D software on a computer to create design drawings. Based on these drawings, they first create a miniature curved surface structure. Then, they refine the specific design of materials and related support and fixing points based on this miniature curved surface structure. When creating this miniature curved surface structure, it is necessary to provide auxiliary support or fixation at different locations according to the characteristics of the curved surface. To address this, an auxiliary device for architectural curved surface design is proposed. Utility Model Content
[0004] The purpose of this invention is to provide an auxiliary device for architectural surface design that can solve the above-mentioned technical problems.
[0005] The specific technical solution adopted by this utility model is as follows:
[0006] This utility model provides an auxiliary device for architectural curved surface design, including a base plate and a top plate. The top plate is provided with multiple sets of equally distributed clamping members. A flexible plate connected to the multiple sets of clamping members is provided above the top plate. Four columns are provided at the four corners between the base plate and the top plate. A lifting plate connected to the clamping members is provided between the base plate and the top plate. The lifting plate is formed with multiple cross-shaped openings. The base plate is provided with multiple adjusting members that match the multiple cross-shaped openings respectively. The multiple adjusting members are misaligned and correspond to the multiple sets of clamping members respectively.
[0007] Each set of the clamping components includes multiple clamping components, each clamping component including a sliding post, which is slidably fitted into a sleeve hole formed on the top plate. Multiple evenly distributed clamping rings are provided on the outer periphery of the sliding post, and the clamping rings are in a clamping matching state with the sleeve hole. A rubber fixing plate is provided on the upper side of the sliding post, and multiple steel plates are longitudinally pasted at the curved part of the bottom surface of the flexible plate, and the steel plates are set on the fixing plate.
[0008] When using the above-mentioned auxiliary device for architectural curved surface design, the anti-slip sleeve on the rotating adjustment component drives the threaded rod to rotate, and simultaneously rotates within the spiral hole column to rise or fall. This drives the two locking rings on the threaded rod to synchronously drive the lifting plate, which in turn drives multiple longitudinal locking components to move synchronously as a whole. This allows the sliding column on the locking component to slide along the sleeve hole on the top plate. At the same time, the locking component on the sliding column is driven to engage in the sleeve hole, forming a compression, thereby creating a real-time braking effect on the sliding column. Simultaneously, the sliding column drives the steel plate on the fixed plate to correspondingly drive the curved surface of the flexible plate, thereby causing the flexible plate to undergo corresponding curved surface changes.
[0009] When adjusting other curved surfaces, the lifting plate can be used to disengage the open retaining ring from the longitudinal sliding columns. Then, the lifting plate can be rotated around the threaded rod to align with the transverse sliding columns. The open retaining ring on the lifting plate can be engaged with the transverse sliding columns. Then, the threaded rod can be rotated again to drive the transverse sliding columns to slide synchronously on the top plate. In this way, multiple transverse steel plates can be used to push and pull the transverse surfaces on the flexible plate, thus dealing with different curved surfaces.
[0010] Preferably, the sliding column is fitted with an open retaining ring located between two adjacent retaining rings, and the number of open retaining rings is multiple and all are located on the side of the lifting plate.
[0011] Preferably, the adjusting component includes a spiral hole post disposed on the base plate, the spiral hole post being internally threaded with a threaded rod, and the upper and lower sides of the lifting plate being provided with locking rings corresponding to the cross-shaped opening locking rings, with both locking rings disposed on the upper side of the threaded rod.
[0012] Preferably, the distance between the two retaining rings on the upper side of the threaded rod is set to 1.2 times the thickness of the lifting plate.
[0013] Preferably, the threaded rod is provided with an anti-slip sleeve located below the snap ring.
[0014] Preferably, the longitudinal positions of the plurality of spiral hole columns are staggered to correspond to the plurality of cross-shaped opening holes on the lifting plate, and the lateral positions of the plurality of spiral hole columns are respectively aligned with the plurality of sets of clamping supports.
[0015] Preferably, the position of the spiral hole column is set to correspond to the positions of the two adjacent sliding columns as the intersection points of an isosceles triangle, and the spiral hole column is located at the vertex of the isosceles triangle.
[0016] The beneficial effects are:
[0017] This invention utilizes a clamping component, a flexible plate, a lifting plate, and an adjusting component. The adjusting component, through adjustment, drives the lifting plate to move up and down. This allows multiple longitudinal clamping components to push or lower the flexible plate, providing fixed-point support for the curved surface of the flexible plate by arching or bending it downwards. The lifting plate, through rotation, causes multiple open retaining rings to engage with multiple transverse clamping components, thereby adjusting the transverse clamping components to provide corresponding curved surface support for the flexible plate. This allows the device to provide fixed-point support and fixation for different curved surface designs, facilitating the support and fixation of micro-curved surface structures made for architectural designs, and improving its practical application effect. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the main structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the clip support structure of this utility model;
[0020] Figure 3 This is a schematic diagram of the adjusting component structure of this utility model;
[0021] Figure 4 This is a schematic diagram of the lifting plate structure of this utility model.
[0022] The attached diagram lists the components represented by each number as follows:
[0023] 1. Base plate; 2. Top plate; 3. Supporting component; 31. Sliding column; 32. Supporting ring; 33. Fixing plate; 34. Steel plate; 4. Flexible plate; 5. Adjusting component; 51. Threaded rod; 52. Spiral hole column; 53. Clip ring; 54. Anti-slip sleeve; 6. Lifting plate; 61. Opening clip ring; 62. Cross opening hole; 7. Column. Detailed Implementation
[0024] To make the objectives and advantages of this utility model clearer, the following detailed description is provided in conjunction with embodiments. It should be understood that the following text is merely used to describe one or more specific embodiments of this utility model and does not strictly limit the scope of protection specifically claimed by this utility model.
[0025] like Figure 1-4As shown, an auxiliary device for architectural curved surface design includes a base plate 1 and a top plate 2. The top plate 2 is provided with multiple sets of equally distributed clamping members 3. A flexible plate 4 connected to the multiple sets of clamping members 3 is provided above the top plate 2. Four columns 7 are provided at the four corners between the base plate 1 and the top plate 2. A lifting plate 6 connected to the clamping members 3 is provided between the base plate 1 and the top plate 2. Multiple cross-shaped openings 62 are formed on the lifting plate 6. Multiple adjusting members 5 are provided on the base plate 1, which are respectively matched with the multiple cross-shaped openings 62. The multiple adjusting members 5 are misaligned and correspond to the multiple sets of clamping members 3.
[0026] Each set of clamping components 3 includes multiple clamping components 3, each clamping component 3 including a sliding post 31, which is slidably fitted into a sleeve hole formed on the top plate 2. Multiple equally distributed clamping rings 32 are provided on the outer periphery of the sliding post 31, and the clamping rings 32 are in a clamping matching state with the sleeve hole. A rubber fixing plate 33 is provided on the upper side of the sliding post 31. Multiple steel plates 34 are longitudinally pasted at the bottom curvature of the flexible plate 4, and the steel plates 34 are set on the fixing plate 33.
[0027] As an optional implementation, the sliding column 31 is fitted with an open retaining ring 61 located between two adjacent retaining rings 32. There are multiple open retaining rings 61, all of which are located on the side of the lifting plate 6. The open retaining rings 61 engage with the sliding column 31. This arrangement allows the open retaining rings 61 to engage with the sliding column 31 when the lifting plate 6 moves up and down, thus driving the sliding column 31 to move. Alternatively, when the open retaining rings 61 on the lifting plate 6 that are far from the threaded rod 51 drive the sliding column 31, uneven force may cause insufficient sliding force of the sliding column 31. After the open retaining rings 61 slide past the retaining rings 32, they rely on the lifting plate 6 to form a horizontal reference, thereby facilitating manual pushing and pulling adjustment of the sliding column 31.
[0028] See attached document Figure 3 The adjusting component 5 includes a spiral hole post 52 set on the base plate 1. The spiral hole post 52 is internally threaded with a threaded rod 51. The upper and lower sides of the lifting plate 6 are provided with locking rings 53 corresponding to the locking of the cross opening hole 62. Both locking rings 53 are set on the upper side of the threaded rod 51. This arrangement allows the threaded rod 51 to provide lifting power adjustment for the lifting plate 6 by relying on the threaded connection with the spiral hole post 52.
[0029] Furthermore, the distance between the two retaining rings 53 on the upper side of the threaded rod 51 is set to 1.2 times the thickness of the lifting plate 6. The threaded rod 51 is fitted and matched with the cross opening hole 62. With this setting, after the threaded rod 51 is fitted with the cross opening hole 62, the two retaining rings 53 on the threaded rod 51 can push and pull the lifting plate 6.
[0030] Furthermore, the threaded rod 51 is provided with an anti-slip sleeve 54 located below the locking ring 53 to improve the anti-slip effect during rotation.
[0031] Furthermore, the longitudinal positions of the multiple spiral hole columns 52 correspond to the multiple cross-shaped opening holes 62 on the lifting plate 6, and the transverse positions of the multiple spiral hole columns 52 correspond to the multiple sets of clamping parts 3.
[0032] Furthermore, the position of the spiral hole column 52 is set to correspond to the intersection points of the two adjacent sliding columns 31 of an isosceles triangle, and the spiral hole column 52 is located at the apex of the isosceles triangle. With this setting, after the threaded rod 51 is fitted onto the cross opening hole 62 on the lifting plate 6 and rotated around it, the multiple opening retaining rings 61 on the lifting plate 6 will engage with the horizontally or vertically arranged sliding rods, thereby enabling synchronous lifting and lowering adjustment of multiple vertically or horizontally arranged sliding rods.
[0033] With the above structure, during use, rotating the anti-slip sleeve 54 on the adjusting component 5 drives the threaded rod 51 to rotate, and simultaneously rotates within the spiral hole column 52 to rise or fall. This drives the two locking rings 53 on the threaded rod 51 to synchronously drive the lifting plate 6. This allows the lifting plate 6 to drive multiple longitudinal locking components 3 to move synchronously as a whole. This allows the sleeve sliding column 31 on the locking component 3 to slide along the sleeve hole on the top plate 2. At the same time, the locking component 3 on the sleeve sliding column 31 is driven to lock into the sleeve hole to form a compression, thereby creating a real-time braking effect on the sleeve sliding column 31. Simultaneously, the sliding of the sleeve sliding column 31 drives the steel plate 34 on the fixed plate 33 to correspondingly drive the curved surface on the flexible plate 4, thereby causing the flexible plate 4 to change its curved surface accordingly.
[0034] When adjusting other curved surfaces, the lifting plate 6 can drive the open retaining ring 61 to disengage from the longitudinal multiple sleeve sliding columns 31. Then, the lifting plate 6 can be rotated around the threaded rod 51 to correspond with the transverse multiple sleeve sliding columns 31, and the open retaining ring 61 on the lifting plate 6 can be engaged with the transverse multiple sleeve sliding columns 31. Then, the threaded rod 51 can be rotated again to drive the transverse multiple sleeve sliding columns 31 to slide synchronously on the top plate 2. In this way, the transverse multiple steel plates 34 can push and pull the transverse side of the flexible plate 4, thereby dealing with different curved surfaces.
[0035] The above description is merely a preferred embodiment of this utility model. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principle of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model. All standard parts used in this application can be purchased from the market, and can be customized according to the description and drawings. The specific connection methods of each part all adopt conventional methods such as bolts, rivets, and welding, which are mature technologies in the prior art. The machinery, parts, and equipment all adopt conventional models in the prior art. The control method is automatic control through a controller. The control circuit of the controller can be implemented by simple programming by those skilled in the art, and is common knowledge in the field. Furthermore, this application is mainly used to protect mechanical devices, so the control method and circuit connection will not be explained in detail here. Structures, devices, and operating methods not specifically described or explained in this utility model, unless otherwise specified or limited, are implemented according to conventional methods in the field.
Claims
1. An auxiliary device for architectural curved surface design, characterized in that: Includes a base plate (1) and a top plate (2). The top plate (2) is provided with multiple sets of equally distributed clamping members (3). A flexible plate (4) connected to the multiple sets of clamping members (3) is provided above the top plate (2). Four columns (7) are provided at the four corners between the base plate (1) and the top plate (2). A lifting plate (6) connected to the clamping members (3) is provided between the base plate (1) and the top plate (2). Multiple cross-shaped opening holes (62) are formed on the lifting plate (6). Multiple adjusting members (5) are provided on the base plate (1) and are respectively matched with the multiple cross-shaped opening holes (62). The multiple adjusting members (5) are misaligned and correspond to the multiple sets of clamping members (3). Each set of the clamping components (3) includes multiple clamping components (3), each clamping component (3) includes a sliding column (31), the sliding column (31) is slidably fitted into a sleeve hole formed on the top plate (2), the outer periphery of the sliding column (31) is provided with multiple equally distributed clamping rings (32), the clamping rings (32) and the sleeve hole are in a clamping matching state, the upper side of the sliding column (31) is provided with a rubber fixing plate (33), and multiple steel plates (34) are longitudinally pasted at the bottom bending part of the flexible plate (4), the steel plates (34) are set on the fixing plate (33).
2. The architectural surface design auxiliary device according to claim 1, characterized in that: The sliding column (31) is fitted with an open retaining ring (61) located between two adjacent retaining rings (32). There are multiple open retaining rings (61) and they are all located on the side of the lifting plate (6).
3. The architectural curved surface design auxiliary device according to claim 2, characterized in that: The adjusting component (5) includes a spiral hole post (52) set on the base plate (1), and a threaded rod (51) is provided in the internal thread of the spiral hole post (52). The upper and lower sides of the lifting plate (6) are provided with locking rings (53) corresponding to the locking of the cross opening hole (62). Both locking rings (53) are set on the upper side of the threaded rod (51).
4. The architectural surface design auxiliary device according to claim 3, characterized in that: The distance between the two locking rings (53) on the upper side of the threaded rod (51) is set to 1.2 times the thickness of the lifting plate (6).
5. The architectural surface design auxiliary device according to claim 4, characterized in that: The threaded rod (51) is provided with an anti-slip sleeve (54) located below the snap ring (53).
6. The architectural surface design auxiliary device according to claim 5, characterized in that: The longitudinal positions of the multiple spiral hole columns (52) correspond to the multiple cross opening holes (62) on the lifting plate (6), and the lateral positions of the multiple spiral hole columns (52) correspond to the multiple sets of clamping members (3).
7. The architectural surface design auxiliary device according to claim 6, characterized in that: The position of the spiral hole column (52) is set to correspond to the positions of the two adjacent sliding columns (31) as the intersection points of an isosceles triangle, and the spiral hole column (52) is located at the vertex of the isosceles triangle.